Heterogeneously catalyzed biodiesel production from Azadiricha Indica oil: Predictive modelling with uncertainty quantification, experimental optimization and techno-economic analysis

被引:37
作者
Oke, E. O. [1 ]
Adeyi, O. [1 ]
Okolo, B., I [1 ]
Ude, C. J. [1 ]
Adeyi, J. A. [2 ]
Salam, K. K. [3 ]
Nwokie, Ugochukwu [1 ]
Nzeribe, I [1 ]
机构
[1] Michael Okpara Univ Agr, Chem Engn Dept, Umudike, Nigeria
[2] Ladoke Akintola Univ Technol, Mech Engn Dept, Ogbomosho, Nigeria
[3] Ladoke Akintola Univ Technol, Chem Engn Dept, Ogbomosho, Nigeria
关键词
Modelling; Simulation; Techno-economic analysis; Optimization; RESPONSE-SURFACE METHODOLOGY; DESIGN; PARAMETERS; KINETICS; OXIDE; TRANSESTERIFICATION; PURIFICATION;
D O I
10.1016/j.biortech.2021.125141
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
This study presents predictive modelling with uncertainty analysis, optimization and techno-economic feasibility of Bio-catalyzed Biodiesel Production from Azidirica Indica Oil (BCBPAIO). Central Composite Design (CCD) predictive model and optimum conditions for BCBPAIO were developed in Design Expert software. The model uncertainty analysis was performed using Monte Carlo simulation. The BCBPAIO simulation and economic analysis were conducted in ASPEN Batch Process Developer V10. The correlation coefficient (R-2) and adjusted R-2 value of the CCD model were 0.9922 and 0.9780 respectively. CCD model certainty gave 73.51% with 100,000 trials; the oil transesterification optimum conditions gave 87.04% conversion with 3.62 wt% of catalysts; and methanol to oil molar ratio of 8:1 at 59 degrees C for 4 h. The annual production cost, total capital investment, payback time and internal rate of returns are $ 3537105, $ 5243784, 2.67 and 43% respectively. This study shows that the production is profitably feasible.
引用
收藏
页数:11
相关论文
共 50 条
[21]   Techno-economic feasibility of producing biodiesel from acidic oil using sulfuric acid and calcium oxide as catalysts [J].
Gebremariam, S. N. ;
Marchetti, J. M. .
ENERGY CONVERSION AND MANAGEMENT, 2018, 171 :1712-1720
[22]   Process optimization and kinetics of biodiesel production from neem oil using copper doped zinc oxide heterogeneous nanocatalyst [J].
Gurunathan, Baskar ;
Ravi, Aiswarya .
BIORESOURCE TECHNOLOGY, 2015, 190 :424-428
[23]  
Handayani P.A., 2018, J BAHAN ALAM TERBARU, V7, P59, DOI [10.15294/jbat.v7i1.11407, DOI 10.15294/JBAT.V7I1.11407]
[24]   Optimization on preparation of Fe3O4/chitosan as potential matrix material for the removal of microcystin-LR and its evaluation of adsorption properties [J].
He, Yafei ;
Wu, Pian ;
Li, Guiyin ;
Li, Lei ;
Yi, Jiecan ;
Wang, Shanlin ;
Lu, Siyu ;
Ding, Ping ;
Chen, Cuimei ;
Pan, Hongzhi .
INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2020, 156 :1574-1583
[25]  
Inayat A., 2020, Chemical Engineering Transactions, V81, P1051, DOI 10.3303/CET2081176
[26]   Biodiesel production from Elaeagnus angustifolia.L seed as a novel waste feedstock using potassium hydroxide catalyst [J].
Kamran, Ehsan ;
Mashhadi, Hamid ;
Mohammadi, Ahmad ;
Ghobadian, Barat .
BIOCATALYSIS AND AGRICULTURAL BIOTECHNOLOGY, 2020, 25
[27]  
Karmakar Anindita, 2017, Indian Journal of Agricultural Research, V51, P529, DOI 10.18805/IJARe.A-4831
[28]   Technoeconomic and environmental assessment of a process for biodiesel production from spent coffee grounds (SCGs) [J].
Kookos, I. K. .
RESOURCES CONSERVATION AND RECYCLING, 2018, 134 :156-164
[29]   Kinetics and optimization studies using Response Surface Methodology in biodiesel production using heterogeneous catalyst [J].
Latchubugata, Chandra Sekhar ;
Kondapaneni, Raghu Vamsi ;
Patluri, Kiran Kumar ;
Virendra, Usha ;
Vedantam, Sreepriya .
CHEMICAL ENGINEERING RESEARCH & DESIGN, 2018, 135 :129-139
[30]   Integrated techno-economic analysis under uncertainty of glycerol steam reforming for H2 production at distributed H2 refueling stations [J].
Lee, Boreum ;
Heo, Juheon ;
Kim, Sehwa ;
Kim, Chang-Hyun ;
Ryi, Shin-Kun ;
Lim, Hankwon .
ENERGY CONVERSION AND MANAGEMENT, 2019, 180 :250-257